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Properties of Chimeric Polysaccharide Monooxygenase with an Attached Cellulose Binding Module and Its Use in the Hydrolysis of Cellulose-Containing Materials in the Composition of Cellulase Complexes

机译:具有附着纤维素结合模块的嵌合多糖单氧化酶的性质及其在纤维素酶复合物组合物中的含纤维素材料水解中的应用

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The use of recently discovered polysaccharide monooxygenases (PMO) in the composition of cellulase complexes greatly enhances their saccharification ability. Genetic engineering is used in this work to produce a chimeric enzyme based on the Thielavia terrestris PMO with cellulose binding module (CBM) from the Penicillium verruculosum cellobiohydrolase I attached to the PMO С -terminus via a peptide linker. Chimeric PMO exhibits higher (by 24%) activity toward amorphous cellulose and wider substrate specificity than the initial PMO. As a result of the CBM attachment, chimeric PMO acquires the ability to cleave xylan and carboxymethyl cellulose in addition to cellulose and β-glucan, and its activity toward xyloglucan increases by one order of magnitude. Replacing 10% of the highly active cellulase preparation hBGL2 produced by P. verruculosum with the chimeric PMO while retaining the overall dose of the enzymes with regard to their protein concentration increases the yield of sugars during the hydrolysis of microcrystalline cellulose and powdered aspen wood by 24 and 47%, respectively. In addition, the maximum yield of sugars during wood hydrolysis is achieved in 24 h of reaction time, in contrast to hydrolysis with the indicated preparation without the added PMO, which requires 48 h.
机译:在纤维素酶复合物的组合物中使用最近发现的多糖单氧基酶(PMO)大大提高了它们的糖化能力。在这项工作中使用基因遗传工程,以通过肽链接器与纤维素结合模块(CBM)基于纤维素结合模块(CBM)产生嵌合酶。嵌合PMO朝向非晶纤维素和较宽的底物特异性表现出更高的(24%)活性,而不是初始PMO。作为CBM附着的结果,嵌合PMO除了纤维素和β-葡聚糖之外,还获取切割Xylan和羧甲基纤维素的能力,并且其对木瓜葡聚糖的活性逐渐增加。用嵌合PMO替代由P.Verruculosum生产的高活性纤维素酶制剂HBG12的高活性纤维素酶制剂HBG12,同时保留其蛋白质浓度的总剂量增加了微晶纤维素和粉末状白杨木的水解过程中糖的产率和24分别为47%。此外,在24小时内实现了木质水解期间的糖的最大收率,与在没有添加的PMO的情况下用表明制剂的水解相反,需要48小时。

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